Nilufer Ertekin-Taner
Mayo Clinic
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Featured researches published by Nilufer Ertekin-Taner.
Nature Neuroscience | 2014
Philip L. De Jager; Gyan Srivastava; Katie Lunnon; Jeremy D. Burgess; Leonard C. Schalkwyk; Lei Yu; Matthew L. Eaton; Brendan T. Keenan; Jason Ernst; Cristin McCabe; Anna Tang; Towfique Raj; Joseph M. Replogle; Wendy Brodeur; Stacey Gabriel; High Seng Chai; Curtis S. Younkin; Steven G. Younkin; Fanggeng Zou; Moshe Szyf; Charles B. Epstein; Julie A. Schneider; Bradley E. Bernstein; Alexander Meissner; Nilufer Ertekin-Taner; Lori B. Chibnik; Manolis Kellis; Jonathan Mill; David A. Bennett
We used a collection of 708 prospectively collected autopsied brains to assess the methylation state of the brains DNA in relation to Alzheimers disease (AD). We found that the level of methylation at 71 of the 415,848 interrogated CpGs was significantly associated with the burden of AD pathology, including CpGs in the ABCA7 and BIN1 regions, which harbor known AD susceptibility variants. We validated 11 of the differentially methylated regions in an independent set of 117 subjects. Furthermore, we functionally validated these CpG associations and identified the nearby genes whose RNA expression was altered in AD: ANK1, CDH23, DIP2A, RHBDF2, RPL13, SERPINF1 and SERPINF2. Our analyses suggest that these DNA methylation changes may have a role in the onset of AD given that we observed them in presymptomatic subjects and that six of the validated genes connect to a known AD susceptibility gene network.
JAMA Neurology | 2010
Gyungah Jun; Adam C. Naj; Gary W. Beecham; Li-San Wang; Jacqueline Buros; Paul Gallins; Joseph D. Buxbaum; Nilufer Ertekin-Taner; M. Daniele Fallin; Robert P. Friedland; Rivka Inzelberg; Patricia L. Kramer; Ekaterina Rogaeva; Peter St George-Hyslop; Laura B. Cantwell; Beth A. Dombroski; Andrew J. Saykin; Eric M. Reiman; David A. Bennett; John C. Morris; Kathryn L. Lunetta; Eden R. Martin; Thomas J. Montine; Alison Goate; Deborah Blacker; Debby W. Tsuang; Duane Beekly; L. Adrienne Cupples; Hakon Hakonarson; Walter A. Kukull
OBJECTIVES To determine whether genotypes at CLU, PICALM, and CR1 confer risk for Alzheimer disease (AD) and whether risk for AD associated with these genes is influenced by apolipoprotein E (APOE) genotypes. DESIGN Association study of AD and CLU, PICALM, CR1, and APOE genotypes. SETTING Academic research institutions in the United States, Canada, and Israel. PARTICIPANTS Seven thousand seventy cases with AD, 3055 with autopsies, and 8169 elderly cognitively normal controls, 1092 with autopsies, from 12 different studies, including white, African American, Israeli-Arab, and Caribbean Hispanic individuals. RESULTS Unadjusted, CLU (odds ratio [OR], 0.91; 95% confidence interval [CI], 0.85-0.96 for single-nucleotide polymorphism [SNP] rs11136000), CR1 (OR, 1.14; 95% CI, 1.07-1.22; SNP rs3818361), and PICALM (OR, 0.89; 95% CI, 0.84-0.94, SNP rs3851179) were associated with AD in white individuals. None were significantly associated with AD in the other ethnic groups. APOE ε4 was significantly associated with AD (ORs, 1.80-9.05) in all but 1 small white cohort and in the Arab cohort. Adjusting for age, sex, and the presence of at least 1 APOE ε4 allele greatly reduced evidence for association with PICALM but not CR1 or CLU. Models with the main SNP effect, presence or absence of APOE ε4, and an interaction term showed significant interaction between presence or absence of APOE ε4 and PICALM. CONCLUSIONS We confirm in a completely independent data set that CR1, CLU, and PICALM are AD susceptibility loci in European ancestry populations. Genotypes at PICALM confer risk predominantly in APOE ε4-positive subjects. Thus, APOE and PICALM synergistically interact.
Nature Genetics | 2009
Minerva M. Carrasquillo; Fanggeng Zou; V. Shane Pankratz; Samantha L. Wilcox; Li Ma; Louise P. Walker; Samuel Younkin; Curtis S. Younkin; Linda Younkin; Gina Bisceglio; Nilufer Ertekin-Taner; Julia E. Crook; Dennis W. Dickson; Ronald C. Petersen; Neill R. Graff-Radford; Steven G. Younkin
By analyzing late-onset Alzheimers disease (LOAD) in a genome-wide association study (313,504 SNPs, three series, 844 cases and 1,255 controls) and evaluating the 25 SNPs with the most significant allelic association in four additional series (1,547 cases and 1,209 controls), we identified a SNP (rs5984894) on Xq21.3 in PCDH11X that is strongly associated with LOAD in individuals of European descent from the United States. Analysis of rs5984894 by multivariable logistic regression adjusted for sex gave global P values of 5.7 × 10−5 in stage 1, 4.8 × 10−6 in stage 2 and 3.9 × 10−12 in the combined data. Odds ratios were 1.75 (95% CI = 1.42–2.16) for female homozygotes (P = 2.0 × 10−7) and 1.26 (95% CI = 1.05–1.51) for female heterozygotes (P = 0.01) compared to female noncarriers. For male hemizygotes (P = 0.07) compared to male noncarriers, the odds ratio was 1.18 (95% CI = 0.99–1.41).
Molecular Neurodegeneration | 2013
Sruti Rayaprolu; Matt Baker; Timothy Lynch; Elizabeth Finger; William W. Seeley; Kimmo J. Hatanpaa; Catherine Lomen-Hoerth; Andrew Kertesz; Eileen H. Bigio; Carol F. Lippa; Keith A. Josephs; David S. Knopman; Charles L. White; Richard J. Caselli; Ian R. Mackenzie; Bruce L. Miller; Magdalena Boczarska-Jedynak; Grzegorz Opala; Anna Krygowska-Wajs; Maria Barcikowska; Steven G. Younkin; Ronald C. Petersen; Nilufer Ertekin-Taner; Ryan J. Uitti; James F. Meschia; Kevin B. Boylan; Bradley F. Boeve; Neill R. Graff-Radford; Zbigniew K. Wszolek; Dennis W. Dickson
BackgroundA rare variant in the Triggering Receptor Expressed on Myeloid cells 2 (TREM2) gene has been reported to be a genetic risk factor for Alzheimer’s disease by two independent groups (Odds ratio between 2.9-4.5). Given the key role of TREM2 in the effective phagocytosis of apoptotic neuronal cells by microglia, we hypothesized that dysfunction of TREM2 may play a more generalized role in neurodegeneration. With this in mind we set out to assess the genetic association of the Alzheimer’s disease-related risk variant in TREM2 (rs75932628, p.R47H) with other related neurodegenerative disorders.ResultsThe study included 609 patients with frontotemporal dementia, 765 with amyotrophic lateral sclerosis, 1493 with Parkinson’s disease, 772 with progressive supranuclear palsy, 448 with ischemic stroke and 1957 controls subjects free of neurodegenerative disease. A significant association was observed for the TREM2 p.R47H substitution in susceptibility to frontotemporal dementia (OR = 5.06; p-value = 0.001) and Parkinson’s disease (OR = 2.67; p-value = 0.026), while no evidence of association with risk of amyotrophic lateral sclerosis, progressive supranuclear palsy or ischemic stroke was observed.ConclusionsOur results suggest that the TREM2 p.R47H substitution is a risk factor for frontotemporal dementia and Parkinson’s disease in addition to Alzheimer’s disease. These findings suggest a more general role for TREM2 dysfunction in neurodegeneration, which could be related to its role in the immune response.
PLOS Genetics | 2012
Fanggeng Zou; High Seng Chai; Curtis S. Younkin; Mariet Allen; Julia E. Crook; V. Shane Pankratz; Minerva M. Carrasquillo; Christopher Rowley; Asha Nair; Sumit Middha; Sooraj Maharjan; Thuy Nguyen; Li Ma; Kimberly Malphrus; Ryan Palusak; Sarah Lincoln; Gina Bisceglio; Constantin Georgescu; Naomi Kouri; Christopher P. Kolbert; Jin Jen; Jonathan L. Haines; Richard Mayeux; Margaret A. Pericak-Vance; Lindsay A. Farrer; Gerard D. Schellenberg; Ronald C. Petersen; Neill R. Graff-Radford; Dennis W. Dickson; Steven G. Younkin
Genetic variants that modify brain gene expression may also influence risk for human diseases. We measured expression levels of 24,526 transcripts in brain samples from the cerebellum and temporal cortex of autopsied subjects with Alzheimers disease (AD, cerebellar n = 197, temporal cortex n = 202) and with other brain pathologies (non–AD, cerebellar n = 177, temporal cortex n = 197). We conducted an expression genome-wide association study (eGWAS) using 213,528 cisSNPs within ±100 kb of the tested transcripts. We identified 2,980 cerebellar cisSNP/transcript level associations (2,596 unique cisSNPs) significant in both ADs and non–ADs (q<0.05, p = 7.70×10−5–1.67×10−82). Of these, 2,089 were also significant in the temporal cortex (p = 1.85×10−5–1.70×10−141). The top cerebellar cisSNPs had 2.4-fold enrichment for human disease-associated variants (p<10−6). We identified novel cisSNP/transcript associations for human disease-associated variants, including progressive supranuclear palsy SLCO1A2/rs11568563, Parkinsons disease (PD) MMRN1/rs6532197, Pagets disease OPTN/rs1561570; and we confirmed others, including PD MAPT/rs242557, systemic lupus erythematosus and ulcerative colitis IRF5/rs4728142, and type 1 diabetes mellitus RPS26/rs1701704. In our eGWAS, there was 2.9–3.3 fold enrichment (p<10−6) of significant cisSNPs with suggestive AD–risk association (p<10−3) in the Alzheimers Disease Genetics Consortium GWAS. These results demonstrate the significant contributions of genetic factors to human brain gene expression, which are reliably detected across different brain regions and pathologies. The significant enrichment of brain cisSNPs among disease-associated variants advocates gene expression changes as a mechanism for many central nervous system (CNS) and non–CNS diseases. Combined assessment of expression and disease GWAS may provide complementary information in discovery of human disease variants with functional implications. Our findings have implications for the design and interpretation of eGWAS in general and the use of brain expression quantitative trait loci in the study of human disease genetics.
Neurology | 2012
Mariet Allen; Fanggeng Zou; High Seng Chai; Curtis S. Younkin; Julia E. Crook; V. Shane Pankratz; Minerva M. Carrasquillo; Christopher Rowley; Asha Nair; Sumit Middha; Sooraj Maharjan; Thuy Nguyen; Li Ma; Kimberly Malphrus; Ryan Palusak; Sarah Lincoln; Gina Bisceglio; Constantin Georgescu; Debra A. Schultz; Fariborz Rakhshan; Christopher P. Kolbert; Jin Jen; Jonathan L. Haines; Richard Mayeux; Margaret A. Pericak-Vance; Lindsay A. Farrer; Gerard D. Schellenberg; Ronald C. Petersen; Neill R. Graff-Radford; Dennis W. Dickson
Objective: Recent genome-wide association studies (GWAS) of late-onset Alzheimer disease (LOAD) identified 9 novel risk loci. Discovery of functional variants within genes at these loci is required to confirm their role in Alzheimer disease (AD). Single nucleotide polymorphisms that influence gene expression (eSNPs) constitute an important class of functional variants. We therefore investigated the influence of the novel LOAD risk loci on human brain gene expression. Methods: We measured gene expression levels in the cerebellum and temporal cortex of autopsied AD subjects and those with other brain pathologies (∼400 total subjects). To determine whether any of the novel LOAD risk variants are eSNPs, we tested their cis-association with expression of 6 nearby LOAD candidate genes detectable in human brain (ABCA7, BIN1, CLU, MS4A4A, MS4A6A, PICALM) and an additional 13 genes ±100 kb of these SNPs. To identify additional eSNPs that influence brain gene expression levels of the novel candidate LOAD genes, we identified SNPs ±100 kb of their location and tested for cis-associations. Results: CLU rs11136000 (p = 7.81 × 10−4) and MS4A4A rs2304933/rs2304935 (p = 1.48 × 10−4–1.86 × 10−4) significantly influence temporal cortex expression levels of these genes. The LOAD-protective CLU and risky MS4A4A locus alleles associate with higher brain levels of these genes. There are other cis-variants that significantly influence brain expression of CLU and ABCA7 (p = 4.01 × 10−5–9.09 × 10−9), some of which also associate with AD risk (p = 2.64 × 10−2–6.25 × 10−5). Conclusions: CLU and MS4A4A eSNPs may at least partly explain the LOAD risk association at these loci. CLU and ABCA7 may harbor additional strong eSNPs. These results have implications in the search for functional variants at the novel LOAD risk loci.
Neurology | 2008
Nilufer Ertekin-Taner; Linda Younkin; Debra Yager; Francine Parfitt; Matt Baker; Sanjay Asthana; Mike Hutton; Samuel Younkin; Neil Graff-Radford
Objective: Plasma Aβ levels are elevated in early-onset Alzheimer disease (AD) caused by autosomal dominant mutations. Our objective was to determine whether similar genetic elevations exist in late-onset AD (LOAD). Methods: We measured plasma Aβ in first-degree relatives of patients with LOAD in a cross-sectional series and in extended LOAD families. We screened these subjects for pathogenic mutations in early-onset AD genes and determined their ApoE genotypes. Results: Plasma Aβ is significantly elevated in the LOAD first-degree relatives in comparison to unrelated controls and married-in spouses. These elevations are not due to ApoE ε4 or pathogenic coding mutations in the known early-onset AD genes. Conclusions: The findings provide strong evidence for the existence of novel, as yet unknown genetic factors that affect late-onset Alzheimer disease by increasing Aβ.
Nature Communications | 2015
Naomi Kouri; Owen A. Ross; Beth A. Dombroski; Curtis S. Younkin; Daniel J. Serie; Alexandra I. Soto-Ortolaza; Matt Baker; Ni Cole A. Finch; Hyejin Yoon; Jungsu Kim; Shinsuke Fujioka; Catriona McLean; Bernardino Ghetti; Salvatore Spina; Laura B. Cantwell; Martin R. Farlow; Jordan Grafman; Edward D. Huey; Mi Ryung Han; Sherry Beecher; Evan T. Geller; Hans A. Kretzschmar; Sigrun Roeber; Marla Gearing; Jorge L. Juncos; Jean Paul Vonsattel; Vivianna M. Van Deerlin; Murray Grossman; Howard I. Hurtig; Rachel G. Gross
Corticobasal degeneration (CBD) is a neurodegenerative disorder affecting movement and cognition, definitively diagnosed only at autopsy. Here, we conduct a genome-wide association study (GWAS) in CBD cases (n=152) and 3,311 controls, and 67 CBD cases and 439 controls in a replication stage. Associations with meta-analysis were 17q21 at MAPT (P=1.42 × 10−12), 8p12 at lnc-KIF13B-1, a long non-coding RNA (rs643472; P=3.41 × 10−8), and 2p22 at SOS1 (rs963731; P=1.76 × 10−7). Testing for association of CBD with top progressive supranuclear palsy (PSP) GWAS single-nucleotide polymorphisms (SNPs) identified associations at MOBP (3p22; rs1768208; P=2.07 × 10−7) and MAPT H1c (17q21; rs242557; P=7.91 × 10−6). We previously reported SNP/transcript level associations with rs8070723/MAPT, rs242557/MAPT, and rs1768208/MOBP and herein identified association with rs963731/SOS1. We identify new CBD susceptibility loci and show that CBD and PSP share a genetic risk factor other than MAPT at 3p22 MOBP (myelin-associated oligodendrocyte basic protein).
Molecular Neurodegeneration | 2015
Sheng Chih Jin; Minerva M. Carrasquillo; Bruno A. Benitez; Tara Skorupa; David Carrell; Dwani Patel; Sarah Lincoln; Siddarth Krishnan; Michaela Kachadoorian; Christiane Reitz; Richard Mayeux; Thomas S. Wingo; James L. Lah; Allan I. Levey; Jill R. Murrell; Hugh C. Hendrie; Tatiana Foroud; Neill R. Graff-Radford; Alison Goate; Carlos Cruchaga; Nilufer Ertekin-Taner
BackgroundTREM2 encodes for triggering receptor expressed on myeloid cells 2 and has rare, coding variants that associate with risk for late-onset Alzheimer’s disease (LOAD) in Caucasians of European and North-American origin. This study evaluated the role of TREM2 in LOAD risk in African-American (AA) subjects. We performed exonic sequencing and validation in two independent cohorts of >800 subjects. We selected six coding variants (p.R47H, p.R62H, p.D87N, p.E151K, p.W191X, and p.L211P) for case–control analyses in a total of 906 LOAD cases vs. 2,487 controls.ResultsWe identified significant LOAD risk association with p.L211P (p = 0.01, OR = 1.27, 95%CI = 1.05-1.54) and suggestive association with p.W191X (p = 0.08, OR = 1.35, 95%CI = 0.97-1.87). Conditional analysis suggests that p.L211P, which is in linkage disequilibrium with p.W191X, may be the stronger variant of the two, but does not rule out independent contribution of the latter. TREM2 p.L211P resides within the cytoplasmic domain and p.W191X is a stop-gain mutation within the shorter TREM-2V transcript. The coding variants within the extracellular domain of TREM2 previously shown to confer LOAD risk in Caucasians were extremely rare in our AA cohort and did not associate with LOAD risk.ConclusionsOur findings suggest that TREM2 coding variants also confer LOAD risk in AA, but implicate variants within different regions of the gene than those identified for Caucasian subjects. These results underscore the importance of investigating different ethnic populations for disease risk variant discovery, which may uncover allelic heterogeneity with potentially diverse mechanisms of action.
Neurobiology of Aging | 2011
Jeremy D. Burgess; Otto Pedraza; Neill R. Graff-Radford; Meron Hirpa; Fanggeng Zou; Richard Miles; Thuy Nguyen; Ma Li; John A. Lucas; Robert J. Ivnik; Julia E. Crook; V. Shane Pankratz; Dennis W. Dickson; Ronald C. Petersen; Steven G. Younkin; Nilufer Ertekin-Taner
KIBRA single nucleotide polymorphism (SNP) rs17070145 was identified in a genome-wide association study (GWAS) of memory performance, with some but not all follow-up studies confirming association of its T allele with enhanced memory. This allele was associated with reduced Alzheimers disease (AD) risk in 1 study, which also found overexpression of KIBRA in memory-related brain regions of AD. We genotyped rs17070145 and 14 additional SNPs in 2571 late onset Alzheimers disease (LOAD) patients vs. 2842 controls, including African-Americans. We found significantly reduced risk for rs17070145 T allele in the older African-American subjects (p = 0.007) and a suggestive effect in the older Caucasian series. Meta-analysis of this allele in > 8000 subjects from our and published series showed a suggestive protective effect (p = 0.07). Analysis of episodic memory in control subjects did not identify associations with rs17070145, though other SNPs showed significant associations in 1 series. KIBRA showed evidence of overexpression in the AD temporal cortex (p = 0.06) but not cerebellum. These results suggest a modest role for KIBRA as a cognition and AD risk gene, and also highlight the multifactorial complexity of its genetic associations.